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However, relatively little is known about how 3D material properties such as stiffness and degradability affect the maintenance of NPC stemness in the absence of differentiation factors.
These metrics are correlated with bone material properties, such as hardness, plasticity and Young's modulus.
Different material properties such as hardening due to strain and strain rate are also considered.
One of the primary reasons is that some of the intrinsic material properties, such as low conductivities, cannot be simply improved by just transforming them into nanostructured materials.
He recently co-authored a paper about the use of tiny vibrations in video to identify material properties such as density and stiffness in fibreglass, wood and metal rods and fabrics.
With different thickness combinations of heterostructure, deviation in material properties such as lattice constant, band gap, has been observed.
Material properties such as ultimate tensile and yield strength were unaffected by the sequential cross-linking process.
These results demonstrate that intricate material properties such as surface chemistry and energy can influence MSC behaviour in vitro.
These new results highlight the ability of quantum-mechanical first-principles calculations to predict complex material properties such as strength.
Using this principle, material properties such as losses may be distributed in the system and may vary with frequency.
Variations in the material properties such as Young's modulus and Poisson's ratio may be arbitrary functions of the radial coordinate.
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